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February 19, 2015SHILAP Revista de lepidopterología378 citationsOpen Access

Atrial‐like cardiomyocytes from human pluripotent stem cells are a robust preclinical model for assessing atrial‐selective pharmacology

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HDHarsha D. DevallaVSVerena SchwachJFJohn W. Ford

Structured PICO

Can hESC-derived atrial cardiomyocytes serve as a robust preclinical model to predict atrial selectivity of pharmacological compounds?

P
Population
Human embryonic stem cell (hESC)-derived atrial and ventricular cardiomyocytes
I
Intervention
Vernakalant, XEN-D0101 (Kv1.5 blocker), and XEN-R0703 (Kir3.1/3.4 blocker)
C
Comparator
hESC-ventricular cardiomyocytes (or untreated state)
O
Outcome
Action potential (AP) prolongation/shortening and expression of atrial-specific ion channel genes (KCNA5, KCNJ3)surrogate

hESC-derived atrial cardiomyocytes provide a robust preclinical model for assessing the atrial selectivity of novel antiarrhythmic drugs.

Abstract

Drugs targeting atrial-specific ion channels, Kv1.5 or Kir3.1/3.4, are being developed as new therapeutic strategies for atrial fibrillation. However, current preclinical studies carried out in non-cardiac cell lines or animal models may not accurately represent the physiology of a human cardiomyocyte (CM). In the current study, we tested whether human embryonic stem cell (hESC)-derived atrial CMs could predict atrial selectivity of pharmacological compounds. By modulating retinoic acid signaling during hESC differentiation, we generated atrial-like (hESC-atrial) and ventricular-like (hESC-ventricular) CMs. We found the expression of atrial-specific ion channel genes, KCNA5 (encoding Kv1.5) and KCNJ3 (encoding Kir 3.1), in hESC-atrial CMs and further demonstrated that these ion channel genes are regulated by COUP-TF transcription factors. Moreover, in response to multiple ion channel blocker, vernakalant, and Kv1.5 blocker, XEN-D0101, hESC-atrial but not hESC-ventricular CMs showed action potential (AP) prolongation due to a reduction in early repolarization. In hESC-atrial CMs, XEN-R0703, a novel Kir3.1/3.4 blocker restored the AP shortening caused by CCh. Neither CCh nor XEN-R0703 had an effect on hESC-ventricular CMs. In summary, we demonstrate that hESC-atrial CMs are a robust model for pre-clinical testing to assess atrial selectivity of novel antiarrhythmic drugs.

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Cite This Study

Devalla et al. (2015) studied this question.

synapsesocial.com/papers/69d9c72f1ad561c6736851afhttps://doi.org/10.15252/emmm.201404757
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